`BOH` is a weak base, molar concentration of `BOH` that provides a `[OH]^(-)` of `1.5xx10^(-3) M[K_(b)(BOH)=1.5xx10^(-5) M]` isA. `1.5xx10^(-5)M`B. `0.015M`C. `0.0015`D. `0.15M`

`BOH` is a weak base, molar concentration of `BOH` that provides a `[O

1.	`BOH` is a weak base, molar concentration of `BOH` that provides a `[OH]^(-)` of `1.5xx10^(-3) M[K_(b)(BOH)=1.5xx10^(-5) M]` isA. `1.5xx10^(-5)M`B. `0.015M`C. `0.0015`D. `0.15M`
Answer» Correct Answer - D `BOH hArr B^(+) + OH^(-) ` `K_(b)=([B^(+)][OH^(-)])/([BOH])` `[B^(+)]=[OH^(-)]` `:. K_(b)=([OH^(-)]^(2))/([BOH])` `[BOH]=([OH^(-)]^(2))/(K_(b))` `=((1.5 xx 10^(-3))^(2))/(1.5 xx 10^(-5))=1.5 xx 10^(-1)M` `=0.15 M`

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`BOH` is a weak base, molar concentration of `BOH` that provides a `[OH]^(-)` of `1.5xx10^(-3) M[K_(b)(BOH)=1.5xx10^(-5) M]` isA. `1.5xx10^(-5)M`B. `0.015M`C. `0.0015`D. `0.15M`

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